SINTERED DIAMOND HEAT EXCHANGER APPARATUS
A heat exchanging medium is provided which is constructed out of sintered diamond. The medium can be formed into various desired shapes such as tubes, mesh, screens, granules or the like. The sintered diamond forms the heat transfer medium of a heat exchanger or regenerator.
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The invention relates to improvements in heat transfer materials. More particularly, this invention relates to the use of sintered diamond material for heat exchangers and regenerators.
BACKGROUNDHeat exchangers are used in many applications including heating units, cooling units, engines and many other applications. For example, heat exchangers are used in Stirling engines such as those found in, by way of example only, U.S. Pat. No. 7,076,941, Such Stirling engines also use regenerators which are specialized heat exchangers. Typically, such engines use heat transferring materials in their heat exchangers and regenerators such as aluminum, copper, brass, or stainless steel. While these heat exchanges are adequate for some uses, an improved heat exchanger is needed which has a higher thermal conductivity. Higher thermal conductivity results in more efficient heat transfer and reduced energy loss. In addition, heat transferring materials are needed with a high thermal diffusivity for the efficient transfer of heat energy.
There remains a need for improved heat exchangers and regenerators which have higher thermal conductivity than heat exchangers and regenerators of the past.
SUMMARY OF THE INVENTIONThe present invention relates to the use of heat exchanging material constructed of sintered natural or synthetic diamond powder or particles. Synthetic diamonds have been manufactured for over half a century. In one manufacturing process, a natural diamond sliver is placed in a chamber under 58,000 atmospheres of pressure at 1500 degrees Celsius. The sliver of natural diamond is bathed in a molten solution of graphite and a catalyst. Carbon precipitates onto the diamond sliver. Using this process, a three carrot diamond can be grown in just a few days. Through this and other methods, over 100 tons of synthetic diamonds are manufactured each year. These synthetic diamonds are used for various industrial and commercial applications. For example, synthetic diamonds are used in drill bits, cutting blades and grinding wheels.
Diamond particles such as natural or synthetic diamond dust are a byproduct of some of these applications and the diamond dust is readily available in many different sizes. This dust could be a byproduct of processes using natural or synthetic diamonds. The sintered diamond dust can be made of particles of various sizes from extremely fine powder to more coarse particles. For example the diamond dust can be found from commercially available sources in particle sizes ranging from 0.025 microns to 100 microns. For example, diamond dust can be purchased in these size ranges from Advanced Abrasives Corporation of Pennsauken, N.J. The cost of diamond dust generally depends on the size of the diamond particles, and the finer the powder, the less expensive it is. Thus, fine powder can be used to form many desired shapes and configurations.
Diamonds have one of the highest coefficients of thermal conductivity of any material. Sintered diamonds have a coefficient of thermal conductivity of nearly 8 watts/cm° C., making it an ideal heat exchanging medium. The use of irregularly shaped particles increases the surface area of the formed or finished sintered diamond heat exchanging material. The process of sintering diamond involves placing the fine powder or particles in a mold. The mold is then placed in an ultra high temperature press and heated to a temperature in the range of 2000 degrees Fahrenheit under a pressure in the range of hundreds of pound per square inch. At this temperature and pressure, the diamond powder is fused together. It is within the scope of the present invention to mix the diamond powder with other materials such as boron carbide, silicon carbide or other materials before sintering. As used herein, sintered diamond can refer to pure sintered diamond, or sintered diamond which also includes other materials mixed with the diamond powder. The diamond could be natural or synthetic.
The sintered diamond material can be formed into many desired shapes including tubes, screens, mesh, disks, granules, or other possible shapes. Where necessary, passages can be formed in the finished sintered diamond heat exchanging materials to allow fluid to flow through. For example, if the sintered diamond is formed into a disk, fluid passages can be formed directly in the disk. The sintered diamond can be formed into various shapes depending on the required application. For example, the sintered diamond can be adapted to be used with a regenerator of a Stirling engine. A regenerator is a temporary repository of heat during certain cycles of the Stirling engine. Heated fluid flows through in one direction, and heat is transferred to the regenerator material. Relatively colder fluid flows through the regenerator in the other direction and picks up the heat energy left behind when the heated fluid flowed through.
In one example embodiment of the present invention, the diamond material can be formed into circular disks resembling mesh material. It will be understood by those of ordinary skill in the art that the disks need not be circular, but can take many different shapes. The material could be made into thin disks which resemble wire mesh heat exchanging material. In this case, the mesh-like disks would be separated by thin insulating layers (with holes for fluid flow) that would keep heat from being conducted from one end of the regenerator to the other. In one example embodiment, the disks would be on the order of ⅛ inch thick.
In another embodiment, the sintered diamond material can be formed into small, irregular pieces of sintered diamond material. These irregular pieces can be packed into a space between insulating disks, and the fluid flow would be between and around these pieces.
When used for a heat exchanger, the diamond particles can be formed into shapes having two flow passages therethrough. The use of two sets of passages is well known in heat exchangers. As fluid flows through one set of passages, heat is transferred to the heat exchanger material. The heat is then transferred to the fluid flowing through the other set of passages. The two sets of passages are isolated from one another so that the two streams of fluid do not mix with one another.
In one example embodiment, a regenerator includes a housing. The housing includes a plurality of sintered diamond elements having a fluid passage therethrough. A plurality of insulating elements are spaced between the sintered diamond elements and also have a fluid passage therethrough. The fluid passages of the insulating elements are in fluid communication with the fluid passages of the sintered diamond elements. The sintered diamond elements can comprise irregularly shaped diamond dust particles sintered together such that the sintered diamond elements are porous. Alternatively, or in addition, the sintered diamond elements can include a plurality of disks placed adjacent one another between the insulating elements. The sintered diamond elements can be made from diamond particles of between 0.001 and 500 microns, for example. In one example embodiment, the sintered diamond elements are made by placing the particles in a mold and subjecting the particles to high temperature and pressure as is known in the diamond sintering art.
In some example embodiments, each of the sintered diamond elements and each of the insulating elements have an opening therethrough, for example through the center of the sintered diamond elements and the insulating elements. Insulating material can be placed within each of the openings of the sintered diamond elements and each of the insulating elements.
In another example embodiment of the invention, a heat exchanger includes a housing containing a plurality of sintered diamond elements. The plurality of sintered diamond elements have first and second fluid passages associated therewith which are isolated from one another. The sintered diamond elements could be, for example mesh constructed of sintered diamonds. Alternatively, or in addition, the sintered diamond elements could be made as disks of sintered diamonds having passages therethrough.
In another embodiment, the sintered diamond elements include a plurality of tubes of sintered diamond. One fluid flow is through the tubes and a second fluid flow is between the plurality of tubes. In another example embodiment, the sintered diamond elements include a first plurality of tubes and a second plurality of tubes. The first plurality of tubes forms a first fluid passage and the second plurality of tubes forms a second fluid passage.
Embodiments and applications of the invention are illustrated by the attached non-limiting drawings. The attached drawings are for purposes of illustrating the concepts of the invention and may not be to scale.
Throughout the following description specific details are presented to provide a more thorough understanding to persons skilled in the art. However, well-known elements may not have been shown or described in detail to avoid unnecessarily obscuring the disclosure. Accordingly, the description and drawings are to be regarded in an illustrative, rather than a restrictive, sense.
It is to be understood that the exemplary embodiments are merely illustrative of the present invention and that many variations of the above-described embodiments can be devised by one skilled in the art without departing from the scope of the invention.
Claims
1. A regenerator for exchanging heat energy between a reciprocating fluid flow and a heat storage medium comprising:
- a housing;
- the heat storage medium including a plurality of sintered diamond elements within the housing, the plurality of sintered diamond elements having a fluid passage therethrough;
- a plurality of insulating elements within the housing and spaced between the sintered diamond elements, the insulating elements having a fluid passage therethrough, the fluid passage of the insulating elements in fluid communication with the fluid passage of the sintered diamond elements.
2. The apparatus of claim 1 wherein the sintered diamond elements comprise irregularly shaped diamond dust particles sintered together such that the sintered diamond elements are porous.
3. The apparatus of claim 1 wherein the sintered diamond elements comprise a plurality of disks placed adjacent one another between the insulating elements.
4. The apparatus of claim 1 wherein the sintered diamond elements comprise a plurality of plates placed adjacent one another between the insulating elements.
5. The apparatus of claim 1 wherein the sintered diamond elements comprise a plurality of tubes placed adjacent one another between the insulating elements.
6. The apparatus of claim 1 wherein the sintered diamond elements are made from diamond particles of between 0.001 and 500 microns.
7. The apparatus of claim 1 wherein the sintered diamond elements are made by placing diamond particles in a mold and heating the particles to sufficient temperature to fuse the particles together.
8. The apparatus of claim 7 wherein the mold has cavities shaped in the form of wire-like mesh.
9. The apparatus of claim 7 wherein the mold has cavities shaped in the form of tubes.
10. The apparatus of claim 1 wherein each of the sintered diamond elements have an opening therethrough and each of the insulating elements have an opening therethrough, and further including an insulating material within each of the openings of the sintered diamond elements and each of the insulating elements.
11. The apparatus of claim 10 wherein the openings in the sintered diamond elements and the openings of the insulating elements are substantially through the center of the sintered diamond elements and the insulating elements.
12. A heat exchanger for exchanging heat energy between a first fluid flow and a second fluid flow comprising:
- a housing;
- a plurality of sintered diamond elements within the housing, the plurality of sintered diamond elements having a first fluid passage associated therewith and a second fluid passage associated therewith, and the first fluid passage is isolated from the second fluid passage.
13. The apparatus of claim 12 wherein the sintered diamond elements comprise a plurality of tubes of sintered diamond and wherein the first fluid passage is through the plurality of tubes and the second fluid is between the plurality of tubes.
14. The apparatus of claim 12 wherein the sintered diamond elements comprise a first plurality of tubes and a second plurality of tubes the first plurality of tubes forming the first fluid passage and the second plurality of tubes forming the second fluid passage wherein the first plurality of tubes and the second plurality of tubes are embedded in a block of sintered diamond.
15. The apparatus of claim 12 wherein the sintered diamond elements are made from diamond particles of between 0.001 and 500 microns.
16. The apparatus of claim 12 wherein the sintered diamond elements are made by placing diamond particles in a mold and heating the particles to sufficient temperature to fuse the particles together.
17. The apparatus of claim 12 wherein the mold has cavities in the shape of tubes.
18. A regenerator for exchanging heat energy between a reciprocating fluid flow and a heat storage medium comprising:
- a housing;
- an insulating core;
- the heat storage medium including a plurality of sintered diamond elements within the housing and surrounding the insulating core, the plurality of sintered diamond elements having a fluid passage therethrough;
- a plurality of insulating elements within the housing and spaced between the sintered diamond elements, the insulating elements having a fluid passage therethrough, the fluid passage of the insulating elements in fluid communication with the fluid passage of the sintered diamond elements.
Type: Application
Filed: Dec 9, 2008
Publication Date: Jun 10, 2010
Applicant: Renewable Thermodynamics, LLC (Middlesex, NY)
Inventors: Gary P. Hoffman (Middlesex, NY), Richard Ide (Middlesex, NY)
Application Number: 12/330,644
International Classification: F28D 17/00 (20060101); F28F 21/02 (20060101);